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Sensor selection for fault diagnosis in uncertain systems

机译:不确定系统中故障诊断的传感器选择

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摘要

Finding the cheapest, or smallest, set of sensors such that a specified level of diagnosis performance is maintained is important to decrease cost while controlling performance. Algorithms have been developed to find sets of sensors that make faults detectable and isolable under ideal circumstances. However, due to model uncertainties and measurement noise, different sets of sensors result in different achievable diagnosability performance in practice. In this paper, the sensor selection problem is formulated to ensure that the set of sensors fulfils required performance specifications when model uncertainties and measurement noise are taken into consideration. However, the algorithms for finding the guaranteed global optimal solution are intractable without exhaustive search. To overcome this problem, a greedy stochastic search algorithm is proposed to solve the sensor selection problem. A case study demonstrates the effectiveness of the greedy stochastic search in finding sets close to the global optimum in short computational time.
机译:找到最便宜或最小的传感器,使得维持指定的诊断性能,以降低控制性能的成本是重要的。已经开发出算法来查找一组传感器,使故障在理想情况下可检测和隔离。然而,由于模型不确定性和测量噪声,不同的传感器在实践中导致不同可实现的诊断性能。在本文中,配制传感器选择问题,以确保当考虑模型不确定性和测量噪声时,该组传感器满足所需的性能规范。但是,用于查找保证的全局最佳解决方案的算法是难以置切性的,没有详尽的搜索。为了克服这个问题,提出了一种贪婪的随机搜索算法来解决传感器选择问题。案例研究展示了贪婪随机搜索在近距离计算时间的全局最优的贪婪随机搜索的有效性。

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